Claims
- 1. A method of forming particles of substantially uniform size with an induced duplex microstructure in an atomization apparatus comprising the steps of:releasing a stream of molten material through an aperture under positive pressure upward into a cooling chamber; allowing the stream to break up into substantially spherical droplets having a kinetic energy sufficient to follow an upward trajectory above the aperture; and, allowing the droplets to impact a chill body disposed at a predetermined distance from the aperture within a collection area of the cooling chamber, wherein at least one of the positive pressure and the predetermined distance is selected to allow the droplets to cool sufficiently to form a skin that substantially retains the droplet shape during impact at the chill body, and to allow the droplets to remain at least partially molten upon impacting the chill body such that, upon impact, the chill body provides a quenching surface that rapidly cools the at least partially molten droplets and induces a duplex microstructure therein.
- 2. A method as defined in claim 1, wherein the molten material comprises at least a metal.
- 3. A method as defined in claim 2, wherein the at least a metal is one of aluminum, magnesium and zinc.
- 4. A method as defined in claim 2, further including the step of dispersing the trajectories of sequential droplets to reduce the incidence of collisions between droplets.
- 5. A method as defined in claim 4, further including the step of impinging the upward trajectory of the stream with a flow coolant comprising at least one of a gas coolant and a partially or fully vaporized liquid coolant.
- 6. A method as defined in claim 5, wherein the coolant includes a fine solid phase material for incorporation with the molten material.
- 7. A method as defined in claim 5, wherein the coolant comprises a mixture including at least one of a protective gas and a gas for promoting mass transfer.
- 8. A method as defined in claim 5, wherein the coolant comprises one or more gasses selected from the group consisting of: argon, nitrogen, helium, and carbon dioxide.
- 9. A method as defined in claim 8, wherein the flow of coolant impinges the upward trajectory of the stream below the azimuth of the trajectory.
- 10. A method as defined in claim 4, wherein the step of dispersing trajectories comprises applying vibrations to the aperture transverse the direction of the molten stream for causing lateral displacement of the aperture, thereby releasing sequential droplets on differing trajectories.
- 11. A method as defined in claim 10, wherein the vibrations are for inducing a Rayleigh wave instability to the molten material for breaking up the stream into substantially uniform droplets.
- 12. A method as defined in claim 1, wherein the upward trajectory includes a descent path comprising at least a portion of a height of the upward trajectory.
- 13. A method as defined in claim 12, wherein the chill body impinges the descent path of the stream below the azimuth of the trajectory.
- 14. A method as defined in claim 12, wherein the chill body comprises a metal surface.
- 15. A method as defined in claim 14, wherein the metal surface comprises a steel plate.
- 16. A method as defined in claim 15, wherein the chill body is maintained approximately at a constant temperature.
- 17. A method as defined in claim 1, wherein the chill body impinges the upward trajectory of the stream below the azimuth of the trajectory.
- 18. A method of forming particles of inhomogeneous chemical composition and of substantially uniform size with an induced duplex microstructure in an atomization apparatus comprising the steps of:releasing a stream of molten alloy material through an aperture under positive pressure upward into a cooling chamber where the stream breaks up into substantially spherical droplets having a kinetic energy sufficient to follow an upward trajectory above the aperture, the molten alloy material provided to the aperture within a range of temperatures between approximately the liquidus point and the solidus point of the molten alloy material; and, allowing the droplets to impact a chill body disposed within a collection area of the cooling chamber while the droplets are at least partially molten.
- 19. A method as defined in claim 18, wherein the molten alloy material comprises at least a metal.
- 20. A method as defined in claim 19, wherein the at least a metal is one of aluminum, magnesium and zinc.
- 21. A method as defined in claim 19, including the step of dispersing the trajectories of sequential particles to reduce the incidence of collisions between particles.
- 22. A method as defined in claim 21, including the step of impinging the upward trajectory of the stream with a flow of coolant comprising at least one of a gas coolant and a partially or fully vaporized liquid coolant.
- 23. A method as defined in claim 22, wherein the coolant comprises a mixture including at least one of a protective gas and a gas for promoting mass transfer.
- 24. A method as defined in claim 22, wherein the coolant comprises one or more gasses selected from the group consisting of: argon, nitrogen, helium, and carbon dioxide.
- 25. A method as defined in claim 24, wherein the flow of coolant impinges the upward trajectory of the stream below the azimuth of the trajectory.
- 26. A method as defined in claim 21, wherein the step of dispersing trajectories comprises applying vibrations to the aperture transverse the direction of the molten stream for causing lateral displacement of the aperture, thereby releasing sequential droplets on differing trajectories.
- 27. A method as defined in claim 26, wherein the vibrations are for inducing a Rayleigh wave instability to the molten alloy material for breaking up the stream into substantially uniform droplets.
- 28. A method as defined in claim 18, wherein spherical particles follow their trajectory past the azimuth on a descent path.
- 29. A method as defined in claim 28, wherein the chill body impinges the upward trajectory of the stream below the azimuth of the trajectory.
- 30. A method as defined in claim 28, wherein the chill body impinges the descent path of the stream below the azimuth of the trajectory.
- 31. A method as defined in claim 28, wherein the chill body comprises a metal surface.
- 32. A method as defined in claim 31, wherein the metal surface comprises a steel plate.
- 33. A method as defined in claim 32, wherein the chill body is maintained approximately at a constant temperature.
Parent Case Info
This application is a continuation-in-part of U.S. patent application Ser. No. 09/255,862 filed Feb. 23, 1999, U.S. Pat. No. 6,162,377.
US Referenced Citations (8)
Foreign Referenced Citations (4)
Number |
Date |
Country |
0 361 396 |
Apr 1990 |
EP |
1307553 |
Feb 1973 |
GB |
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Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09/255862 |
Feb 1999 |
US |
Child |
09/698271 |
|
US |